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PLoS biology, 06/2019, Volume 17, Issue 6, p. e2006223
.... Here, to gain insights into the basic cellular rules that drive the activity-dependent spatial distribution of pre- and postsynaptic strengths across incoming axons and dendrites, we combine patch... 
Dendrites - metabolism | Synaptic Potentials - physiology | Synapses - physiology | CA3 Region, Hippocampal - physiology | Mice, Inbred C57BL | Homeostasis | Presynaptic Terminals - physiology | Axons | Patch-Clamp Techniques | Animals | Excitatory Postsynaptic Potentials | Dendrites - physiology | Pyramidal Cells - physiology | Neurons - physiology | Mice | Models, Neurological | Hippocampus - physiology
Journal Article
Journal Article
Journal of Neuroscience, ISSN 0270-6474, 07/2009, Volume 29, Issue 28, pp. 9127 - 9136
Journal Article
Proceedings of the National Academy of Sciences - PNAS, ISSN 1091-6490, 2011, Volume 108, Issue 24, pp. 9987 - 9992
Journal Article
American Journal of Physiology - Cell Physiology, ISSN 0363-6143, 09/2011, Volume 301, Issue 3, pp. 587 - 600
Transient receptor potential (TRP) ankyrin 1 (TRPA1) is a Ca2+-permeant, nonselective cationic channel... 
Transient receptor potential vanilloid 1 | Synaptic transmission | Patchclamp | COLD HYPERALGESIA | PROTEIN-KINASE-C | PHYSIOLOGY | ION-CHANNEL TRPA1 | GLUTAMATERGIC SYNAPTIC-TRANSMISSION | GENE-RELATED PEPTIDE | patch-clamp | transient receptor potential vanilloid 1 | SPINAL-CORD | SENSORY NEURONS | DIRECT PHOSPHORYLATION | CELL BIOLOGY | SUBSTANTIA-GELATINOSA NEURONS | COVALENT MODIFICATION | synaptic transmission | Hyperalgesia - chemically induced | Calcium - metabolism | Capsaicin - pharmacology | Nociception - physiology | Ganglia, Spinal - cytology | Nociceptive Pain - chemically induced | Calcium Channels - physiology | Protein Kinase C - metabolism | Oocytes - drug effects | Behavior, Animal - drug effects | Synaptic Transmission - drug effects | Ankyrins - agonists | Membrane Potentials - drug effects | Calcium - pharmacology | TRPC Cation Channels | Colforsin - pharmacology | Oocytes - metabolism | Rats | Rats, Sprague-Dawley | 1-Methyl-3-isobutylxanthine - pharmacology | Tachyphylaxis - physiology | Mice, Knockout | Nociceptive Pain - physiopathology | Spermine - pharmacology | Mice | Inhibitory Postsynaptic Potentials - drug effects | Electrophysiological Phenomena - drug effects | Hydrogen-Ion Concentration | Maleimides - pharmacology | Phorbol 12,13-Dibutyrate - pharmacology | Isocyanates - pharmacology | Miniature Postsynaptic Potentials - drug effects | Excitatory Postsynaptic Potentials - drug effects | Dose-Response Relationship, Drug | Excitatory Postsynaptic Potentials - physiology | Trigeminal Caudal Nucleus - cytology | Neurons - physiology | Transient Receptor Potential Channels - physiology | Neurons - drug effects | Action Potentials - drug effects | Miniature Postsynaptic Potentials - physiology | Cyclic AMP-Dependent Protein Kinases - metabolism | Xenopus laevis | Electrophysiological Phenomena - physiology | Inhibitory Postsynaptic Potentials - physiology | Ankyrins - physiology | Allyl Compounds - pharmacology | Membrane Potentials - physiology | Mice, Inbred Strains | Transient Receptor Potential Channels - agonists | TRPV Cation Channels - genetics | Hyperalgesia - physiopathology | Action Potentials - physiology | Animals | TRPA1 Cation Channel | Ion Channel Gating - drug effects | Nociception | Neural transmission | Ion channels | Research | Properties | Nervous System Cell Biology
Journal Article
Neuroscience, ISSN 0306-4522, 2010, Volume 169, Issue 4, pp. 1610 - 1620
Abstract We have shown that cortical acetylcholine modulates the balance between excitation and inhibition evoked in layer 5 pyramidal neurons of rat visual... 
Neurology | pyramidal neuron | acetylcholine | M1- M2- M3- M4- M5-muscarinic receptors | cortical network | Acetylcholine | Cortical network | Pyramidal neuron | GABAERGIC TRANSMISSION | SYNAPTIC-TRANSMISSION | NEUROSCIENCES | ACETYLCHOLINE-RECEPTOR | CEREBRAL-CORTEX | IN-VITRO | CORTICAL-NEURONS | M1-M2-M3-M4-M5-muscarinic receptors | AUDITORY-CORTEX | CHOLINERGIC MODULATION | POSTNATAL-DEVELOPMENT | HIPPOCAMPAL PYRAMIDAL CELLS | Pyramidal Cells - metabolism | Rats, Wistar | Receptor, Muscarinic M4 - physiology | Receptor, Muscarinic M1 - antagonists & inhibitors | Receptor, Muscarinic M3 - physiology | Receptors, Muscarinic - metabolism | Receptor, Muscarinic M1 - physiology | Excitatory Postsynaptic Potentials - drug effects | Receptor, Muscarinic M2 - physiology | Visual Cortex - physiology | Excitatory Postsynaptic Potentials - physiology | Neural Inhibition - physiology | Muscarinic Antagonists - pharmacology | Pyramidal Cells - physiology | Receptor, Muscarinic M2 - antagonists & inhibitors | Glutamic Acid - secretion | Pyramidal Cells - drug effects | Organ Culture Techniques | Inhibitory Postsynaptic Potentials - physiology | Rats | Receptor, Muscarinic M3 - antagonists & inhibitors | Animals | Glutamic Acid - metabolism | Visual Cortex - drug effects | Neural Inhibition - drug effects | Receptor, Muscarinic M4 - antagonists & inhibitors | Inhibitory Postsynaptic Potentials - drug effects | Receptors, Muscarinic - physiology | Methyl aspartate | Cell research | Neurosciences | Neurons | GABA | Glutamate | Benzodiazepines | Acetylcholine receptors (muscarinic) | Neural Inhibition | Neurons and Cognition | Visual Cortex | Muscarinic Antagonists | Receptor, Muscarinic M1 | Receptor, Muscarinic M2 | Receptor, Muscarinic M3 | Receptor, Muscarinic M4 | Glutamic Acid | Life Sciences | Receptors, Muscarinic | Excitatory Postsynaptic Potentials | Pyramidal Cells | Inhibitory Postsynaptic Potentials
Journal Article
The Journal of neuroscience, ISSN 1529-2401, 1998, Volume 18, Issue 24, pp. 10464 - 10472
Journal Article